Calvo Katherine R, Sykes David B, Pasillas Martina P, Kamps Mark P
University of California School of Medicine, Department of Pathology 9500 Gilman Drive, La Jolla, California, CA 92093-0612, USA.
Oncogene. 2002 Jun 20;21(27):4247-56. doi: 10.1038/sj.onc.1205516.
The association between acute myeloid leukaemia (AML) and the aberrant expression of Hoxa9 is evidenced by (1) proviral activation of Hoxa9 and Meis1 in BXH-2 murine AML, (2) formation of the chimeric Nup98-HoxA9 transactivator protein as a consequence of the t(7;11) translocation in human AML, and (3) the strong expression of HoxA9 and Meis1 in human AML. In mouse models, enforced retroviral expression of Hoxa9 alone in marrow is not sufficient to cause rapid AML, while co-expression of Meis1 and Hoxa9 induces rapid AML. In contrast, retroviral expression of Nup98-HoxA9 is sufficient to cause rapid AML in the absence of enforced Meis1 expression. Previously, we demonstrated that Hoxa9 could block the differentiation of murine marrow progenitors cultured in granulocyte-macrophage colony-simulating factor (GM-CSF). These progenitors lacked Meis1 expression, could not proliferate in stem cell factor (SCF), but could differentiate into neutrophils when switched into granulocyte colony-simulating factor (G-CSF). Ectopic expression of Meis1 in these Hoxa9 cells suppressed their G-CSF-induced differentiation, permitted proliferation in SCF, and therein offered a potential explanation of cooperative function. Because Meis1 binds N-terminal Hoxa9 sequences that are replaced by Nup98, we hypothesized that Nup98-HoxA9 might consolidate the biochemical functions of both Hoxa9 and Meis1 on target gene promoters and might evoke their same lymphokine-responsive profile in immortalized progenitors. Here we report that Nup98-HoxA9, indeed mimicks Hoxa9 plus Meis1 coexpression - it immortalizes myeloid progenitors, prevents differentiation in response to GM-CSF, IL-3, G-CSF, and permits proliferation in SCF. Unexpectedly, however, Nup98-Hoxa9 also enforced strong transcription of the cellular Hoxa9, Hoxa7 and Meis1 genes at levels similar to those found in mouse AML's generated by proviral activation of Hoxa9 and Meis1. Using Hoxa9(-/-) marrow, we demonstrate that expression of Hoxa9 is not required for myeloid immortalization by Nup98-HoxA9. Rapid leukaemogenesis by Nup98-HoxA9 may therefore result from both the intrinsic functions of Nup98-HoxA9, as well as of those of coexpressed HOX and MEIS1 genes.
急性髓系白血病(AML)与Hoxa9异常表达之间的关联表现为:(1)BXH - 2小鼠AML中Hoxa9和Meis1的前病毒激活;(2)人类AML中因t(7;11)易位形成嵌合Nup98 - HoxA9反式激活蛋白;(3)HoxA9和Meis1在人类AML中的强表达。在小鼠模型中,单独通过逆转录病毒在骨髓中强制表达Hoxa9不足以引发快速AML,而Meis1和Hoxa9共表达则可诱导快速AML。相比之下,Nup98 - HoxA9的逆转录病毒表达在未强制表达Meis1的情况下足以引发快速AML。此前,我们证明Hoxa9可阻断在粒细胞 - 巨噬细胞集落刺激因子(GM - CSF)中培养的小鼠骨髓祖细胞的分化。这些祖细胞缺乏Meis1表达,在干细胞因子(SCF)中无法增殖,但在转换为粒细胞集落刺激因子(G - CSF)时可分化为中性粒细胞。在这些Hoxa9细胞中异位表达Meis1可抑制其G - CSF诱导的分化,使其在SCF中能够增殖,从而为协同功能提供了一种潜在解释。由于Meis1结合被Nup98取代的Hoxa9 N端序列,我们推测Nup98 - HoxA9可能整合了Hoxa9和Meis1在靶基因启动子上的生化功能,并可能在永生化祖细胞中引发相同的淋巴因子反应谱。在此我们报告,Nup98 - HoxA9确实模拟了Hoxa9加Meis1的共表达——它使髓系祖细胞永生化,阻止对GM - CSF、IL - 3、G - CSF的分化反应,并允许在SCF中增殖。然而,出乎意料的是,Nup98 - Hoxa9还强制细胞内Hoxa9、Hoxa7和Meis1基因进行强转录,其水平与通过Hoxa9和Meis1前病毒激活产生的小鼠AML中发现的水平相似。使用Hoxa9(-/-)骨髓,我们证明Nup98 - HoxA9介导的髓系永生化不需要Hoxa9的表达。因此,Nup98 - HoxA9导致的快速白血病发生可能源于Nup98 - HoxA9的内在功能以及共表达的HOX和MEIS1基因的功能。